Page 36 - AN-3-3
P. 36

Advanced Neurology                                                           Tau pathology in murine TBI



               tau as the earliest detectable pathogenic conformation in   62.  Folkerts MM, Parks EA, Dedman JR, Kaetzel MA, Lyeth BG,
               Alzheimer disease, offering novel diagnostic and therapeutic   Berman RF. Phosphorylation of calcium calmodulin-
               strategies. Prion. 2013;7(2):117-120.              dependent protein kinase II following lateral fluid percussion
                                                                  brain injury in rats. J Neurotrauma. 2007;24(4):638-650.
               doi: 10.4161/pri.22849
                                                                  doi: 10.1089/neu.2006.0188
            53.  Ghag G, Bhatt N, Cantu DV, et al. Soluble tau aggregates, not
               large fibrils, are the toxic species that display seeding and   63.  Farr SA, Niehoff ML, Kumar VB, Roby DA, Morley JE.
               cross-seeding behavior. Protein Sci. 2018;27(11):1901-1909.  Inhibition of glycogen synthase kinase 3β as a treatment for
                                                                  the prevention of cognitive deficits after a traumatic brain
               doi: 10.1002/pro.3499
                                                                  injury. J Neurotrauma. 2019;36(11):1869-1875.
            54.  Petry FR, Pelletier J, Bretteville A,  et al. Specificity of
               anti-tau antibodies when analyzing mice models of      doi: 10.1089/neu.2018.5999
               Alzheimer’s disease: Problems and solutions.  PLoS One.   64.  Zhao ZA, Zhao Y, Ning YL, et al. Adenosine A(2A) receptor
               2014;9(5):e94251.                                  inactivation alleviates early-onset cognitive dysfunction
                                                                  after traumatic brain injury involving an inhibition of tau
               doi: 10.1371/journal.pone.0094251
                                                                  hyperphosphorylation. Transl Psychiatry. 2017;7(5):e1123.
            55.  Li D, Cho YK. High specificity of widely used phospho-tau
               antibodies validated using a quantitative whole-cell based      doi: 10.1038/tp.2017.98
               assay. J Neurochem. 2020;152(1):122-135.        65.  Wang Y, Hall RA, Lee M, Kamgar-Parsi A, Bi X,
                                                                  Baudry   M. The tyrosine phosphatase PTPN13/FAP-1
               doi: 10.1111/jnc.14830
                                                                  links calpain-2, TBI and tau tyrosine phosphorylation. Sci
            56.  Tran HT, Sanchez L, Brody DL. Inhibition of JNK by a   Rep. 2017;7(1):11771.
               peptide  inhibitor  reduces  traumatic  brain  injury-induced
               tauopathy in transgenic mice.  J  Neuropathol Exp Neurol.      doi: 10.1038/s41598-017-12236-3
               2012;71(2):116-129.                             66.  Furman JL, Sompol P, Kraner SD,  et al. Blockade of
                                                                  astrocytic calcineurin/NFAT signaling helps to normalize
               doi: 10.1097/NEN.0b013e3182456aed
                                                                  hippocampal synaptic function and plasticity in a rat model
            57.  Bales JW, Ma X, Yan HQ, Jenkins LW, Dixon CE. Regional   of traumatic brain injury. J Neurosci. 2016;36(5):1502-1515.
               calcineurin subunit B isoform expression in rat hippocampus
               following a traumatic brain injury.  Brain Res.  2010;1358:      doi: 10.1523/JNEUROSCI.1930-15.2016
               211-220.                                        67.  Tapella L, Dematteis G, Ruffinatti FA,  et al. Deletion of
                                                                  calcineurin from astrocytes reproduces proteome signature
               doi: 10.1016/j.brainres.2010.08.029
                                                                  of Alzheimer’s disease and epilepsy and predisposes to
            58.  Tan Z, Chen L, Ren Y, Jiang X, Gao W. Neuroprotective   seizures. Cell Calcium. 2021;100:102480.
               effects of FK866 against traumatic brain injury: Involvement
               of p38/ERK pathway.  Ann Clin Transl Neurol.  2020;7(5):      doi: 10.1016/j.ceca.2021.102480
               742-756.                                        68.  Chen Y, Holstein DM, Aime S, Bollo M, Lechleiter JD.
                                                                  Calcineurin beta protects brain after injury by activating the
               doi: 10.1002/acn3.51044
                                                                  unfolded protein response. Neurobiol Dis. 2016;94:139-156.
            59.  Otani N, Nawashiro H, Fukui S, Nomura N, Shima  K.
               Temporal  and  spatial  profile  of  phosphorylated     doi: 10.1016/j.nbd.2016.06.011
               mitogen-activated protein kinase pathways after lateral   69.  Zhao ZA, Li P, Ye SY, et al. Perivascular AQP4 dysregulation
               fluid percussion injury in the cortex of the rat brain.   in the hippocampal CA1 area after traumatic brain injury
               J Neurotrauma. 2002;19(12):1587-1596.              is alleviated by adenosine A(2A) receptor inactivation. Sci
                                                                  Rep. 2017;7(1):2254.
               doi: 10.1089/089771502762300247
                                                                  doi: 10.1038/s41598-017-02505-6
            60.  Huang S, Ge X, Yu J, et al. Increased miR-124-3p in microglial
               exosomes following traumatic brain injury inhibits neuronal   70.  Pertwee RG. The diverse CB1 and CB2 receptor pharmacology
               inflammation and contributes to neurite outgrowth via their   of three plant cannabinoids: Delta9-tetrahydrocannabinol,
               transfer into neurons. FASEB J. 2018;32(1):512-528.  cannabidiol and delta9-tetrahydrocannabivarin.  Br J
                                                                  Pharmacol. 2008;153(2):199-215.
               doi: 10.1096/fj.201700673R
                                                                  doi: 10.1038/sj.bjp.0707442
            61.  Zhao S, Fu J, Liu X, Wang T, Zhang J, Zhao Y. Activation of
               Akt/GSK-3beta/beta-catenin signaling pathway is involved   71.  Yin Z, Han Z, Hu T, et al. Neuron-derived exosomes with
               in survival of neurons after traumatic brain injury in rats.   high miR-21-5p expression promoted polarization of M1
               Neurol Res. 2012;34(4):400-407.                    microglia in culture. Brain Behav Immun. 2020;83:270-282.
               doi: 10.1179/1743132812Y.0000000025                doi: 10.1016/j.bbi.2019.11.004


            Volume 3 Issue 3 (2024)                         11                               doi: 10.36922/an.3213
   31   32   33   34   35   36   37   38   39   40   41